A flexible display panel can be bent around an axis, and includes a flexible substrate and an accommodating structure. The accommodating structure is disposed on the flexible substrate and includes a plurality of polygonal microcups connected to each other, where the polygonal microcups are arranged regularly, and the axis is not substantially parallel to any sidewall of each polygonal microcup.
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1. A flexible display panel, capable of being bent around an axis and comprising:
a flexible substrate; and
an accommodating structure, disposed on the flexible substrate and comprising a top surface and a plurality of polygonal microcups connected to each other, wherein the polygonal microcups are arranged regularly, and the axis is not substantially parallel to any sidewall of each of the polygonal microcups,
wherein the flexible display panel has a bendable section and two rigid sections that are each less bendable than the bendable section, the bendable section is located between the two rigid sections, and the axis is located in the bendable section,
wherein each polygonal microcup has a height extending from a bottom surface of the microcup to the top surface of the accommodating structure,
wherein the heights of the polygonal microcups in the bendable section is are lower than the height of the polygonal microcups in the rigid sections, and
wherein the heights of the polygonal microcups in the bendable section increasingly increase from the axis to the to the rigid sections.
2. The flexible display panel of
two first sidewalls, opposite to and substantially parallel to each other and; and
a plurality of second sidewalls, connect to the first sidewalls, wherein the first sidewalls lie in a plurality of reference planes parallel to each other, and an included angle between the axis and the reference plane is larger than 60° , and less than or equal to 90°.
3. The flexible display panel of
4. The flexible display panel of
wherein the chamfer part connected to the first sidewalls, the second sidewalls, and the bottom layer is located at a junction between the bottom layer and both of the first sidewalls and the second sidewalls.
5. The flexible display panel of
6. The flexible display panel of
7. The flexible display panel of
two first sidewalls, opposite to and substantially parallel to each other; and
two second sidewalls, opposite to and substantially parallel to each other, wherein the second sidewalls are connected to the first sidewalls, and an included angle between the axis and the first sidewall is larger than 60°, and less than or equal to 90°.
8. The flexible display panel of
9. The flexible display panel of
10. The flexible display panel of
11. The flexible display panel of
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This application claims priority to Taiwan Application Serial Number 110100260, filed Jan. 5, 2021, which is herein incorporated by reference in its entirety.
The present disclosure relates to a display. More particularly, the present disclosure relates to a flexible display panel.
The existing display technology has developed a flexible display panel, in which the flexible display panel can be bent repeatedly many times. However, the existing flexible display panel is usually damaged after certain times of bending. Thus, many manufacturers are studying how to enhance the tolerant strength of the flexible display panel, so as to increase the times of bending that the flexible display panel can withstand, thereby improving the lifetime of the flexible display panel.
At least one embodiment of the disclosure provides a flexible display panel including an accommodating structure that can enhance the tolerant strength of the flexible display panel, so as to increase the times of bending that the flexible display panel can withstand.
A flexible display panel according to at least one embodiment of the disclosure can be bent around an axis and includes a flexible substrate and an accommodating structure. The accommodating structure is disposed on the flexible substrate and includes a plurality of polygonal microcups connected to each other, in which the polygonal microcups are arranged regularly, and the abovementioned axis is not substantially parallel to any sidewall of each of the polygonal microcups.
A flexible display panel according to at least one embodiment of the disclosure can be bent around an axis and includes a flexible substrate and an accommodating structure. The accommodating structure is disposed on the flexible substrate and includes a plurality of polygonal microcups connected to each other, in which the polygonal microcups are arranged regularly. Each of the polygonal microcups has a width and a thickness, where a ratio value of the width to the thickness ranges between 5 and 80.
Based on the above, under the condition that the abovementioned axis is not substantially parallel to any sidewall of each polygonal microcup, the accommodating structure can enhance the tolerant strength of the flexible display panel, so as to increase the times of bending that the flexible display panel can withstand, thereby improving the, thereby improving the lifetime of the flexible display panel.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the disclosure as claimed.
The disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
In the following description, in order to clearly present the technical features of the present disclosure, the dimensions (such as length, width, thickness, and depth) of elements (such as layers, films, substrates, and areas) in the drawings will be enlarged in unusual proportions. Accordingly, the description and explanation of the following embodiments are not limited to the sizes and shapes of the elements presented in the drawings, but should cover the sizes, shapes, and deviations of the two due to actual manufacturing processes and/or tolerances. For example, the flat surface shown in the drawings may have rough and/or non-linear characteristics, and the acute angle shown in the drawings may be round. Therefore, the elements presented in the drawings in this case which are mainly for illustration are intended neither to accurately depict the actual shape of the elements nor to limit the scope of patent applications in this case.
The flexible substrate 110 can have circuitry (not shown), which can include a plurality of control components, in which the control component may be a transistor or a diode. Specifically, the flexible display panel 100 can be an active display panel or a passive display panel. When the flexible display panel 100 is the active display panel, the control components of the flexible substrate 110 can be transistors, such as thin-film transistors (TFTs). When the flexible display panel 100 is the passive display panel, the control components of the flexible substrate 110 can be diodes.
The flexible display panel 100 can further include two protective layers 131, 132, and a functional layer 140. Both of the protective layers 131 and 132 are disposed on the accommodating structure 120 and the flexible substrate 110, in which the accommodating structure 120 and the flexible substrate 110 are located between both of the protective layers 131 and 132. Accordingly, the protective layers 131 and 132 can protect the accommodating structure 120 and the flexible substrate 110. The functional layer 140 can be disposed on the protective layer 131 and provide additional function. For example, the functional layer 140 can be a touch sensing layer, so that the flexible display panel 100 can have the function of touch sensing. Alternatively, the functional layer 140 can be an anti-reflective (AR) layer, so as to reduce the light reflecting off the flexible display panel 100, thereby improving the image quality.
Each of the polygonal microcups 121 includes two first sidewalls S1 and a plurality of second sidewalls S2, in which the first sidewalls S1 are opposite to and substantially parallel to each other, and both shapes of the first sidewall S1 and the second sidewall S2 are substantially the same. Hence, the first sidewalls S1 can substantially lie in a plurality of reference planes R1 that are substantially parallel to each other, where all of the reference planes R1 are virtual plane. The second sidewalls S2 are connected to the first sidewalls S1, in which two first sidewalls S1 and four second sidewalls S2 can form a polygonal microcup 121, i.e., a hexagonal microcup, and surround a hole 121h, as shown in
The hole 121h of each of the polygonal microcups 121 can accommodate image-display ink (not shown), in which the image-display ink may be electrophoretic ink used in an electrophoretic display (EPD) panel. The circuitry of the flexible substrate 110 (referring to
The flexible display panel 100 can be bent (e.g., rolled) around the axis A1, in which the axis A1 is not substantially parallel to any sidewall of each of the polygonal microcups 121, i.e., not parallel to the first sidewall S1 and the second sidewall S2. For example, under the condition that each of the polygonal microcups 121 substantially takes the shape of a regular hexagonal prism, the angle of each of the polygonal microcups 121, that is, the included angle between two adjacent sidewalls (e.g., both of the first sidewall S1 and the second sidewall S2, or two adjacent second sidewalls S2) is substantially 120°.
Each of the polygonal microcups 121 has a width 121w and a thickness 121t. Since each of the polygonal microcups 121 substantially takes the shape of a regular hexagonal prism, the width 121w can be equivalent to a distance between two opposite first sidewalls S1 or a distance between two opposite second sidewalls S2 in the same polygonal microcup 121. In addition, in the embodiment, the ration value of the width 121w to the thickness 121t can range between 0.5 and 1.5.
Under the condition that the angle of each of the polygonal microcups 121 is substantially 120°, the axis A1 is not substantially parallel to any one of the first sidewalls S1 and the second sidewalls S2 of each of the polygonal microcups 121 when the included angle θ1 between the axis A1 and the reference plane R1 (equivalent to the first sidewall S1) is larger than 60°, and less than or equal to 90°. In addition, in the embodiment shown in
When the angle shown in the horizontal axis of
As seen from the line E1 shown in
Conversely, when the included angle θ2 is 90°, the accommodating structure 120 has a weak shear strength (about 3.5 MPa), so that the accommodating structure 120 has a bad shear strength in the direction perpendicular to the reference plane R1. That is to say, the accommodating structure 120 is not capable of withstanding the stress in the direction perpendicular to the reference plane R1. Moreover, it can be known from the line E1 shown in
When the flexible display panel 100 is bent around the axis A1 without limiting the included angle θ1, the accommodating structure 120 can generate the stress in the direction perpendicular to the axis A1. For example, when the flexible display panel 100 is bent around the axis A1 that is substantially perpendicular to the reference plane R1 (i.e., the included angle θ1 is substantially equal to 90°), the accommodating structure 120 can generate the stress in the direction substantially parallel to the reference plane R1 and the surface 112, where the stress is substantially perpendicular to the axis A1 and parallel to the direction D1 when the included angle θ2 is 0°.
Since the accommodating structure 120 has the best shear strength in the direction parallel to the reference plane R1 and the surface 112, and is capable of withstanding the stress in the direction parallel to the reference plane R1 and the surface 112, under the condition that the axis A1 is substantially perpendicular to the reference plane R1, in contrast to the existing flexible display panel, the flexible display panel 100 which can be bent around the axis A1 can withstand more times of bending, thereby having longer lifetime.
In addition, as seen from the line E1 shown in
Referring to
Referring to
For example, the accommodating structure 220 also includes a plurality of polygonal microcups 221 which are connected to each other and arranged regularly, and each of the polygonal microcups 221 takes the shape of a hexagonal prism basically and has a hole 221h, where the accommodating space of the hole 221h also can take the shape of a hexagonal prism basically and accommodate the image-display ink (not shown), such as electrophoretic ink. In other words, all of the polygonal microcups 221 are hexagonal microcups and can be arranged in a honeycomb.
Unlike the previous embodiment, in the embodiment, the heights of the polygonal microcups 221 are not equal. Specifically, the height H1 of the polygonal microcups 221 in the bendable section 201 is lower than the height H2 of the polygonal microcups 221 in the rigid sections 202, in which the variation in height of the polygonal microcups 221 in the bendable section 201 increases from the axis A2 to the rigid section 202. In other words, the polygonal microcups 221 near the axis A2 have a low height H1, and the polygonal microcups 221 far away from the axis A2 have a high height H1. Hence, it is advantageous to bend the bendable section 201 so that the flexible display panel 200 is easily folded along the axis A2.
Moreover, each of the polygonal microcups 221 can include a bottom layer 221b, a chamfer part 221c, a plurality of first sidewalls S1 (as shown in
It is worth mentioning that the chamfer part 221c in the embodiment can be applied to the flexible display panel 100 in the previous embodiment. In other words, in the preceding accommodating structure 120, each of the polygonal microcups 121 further includes a bottom layer (not shown), and the chamfer parts 221c can be formed at the junctions between the bottom layer and both of the first sidewalls S1 and the second sidewalls S2 in the polygonal microcups 121. Hence, the chamfer part 221c is not limited to being in the polygonal microcup 221.
Unlike the accommodating structure 120 of the previous embodiment, the accommodating structure 320 shown by the embodiment in
Unlike the previous embodiment, each of the polygonal microcups 421 can be a quadrilateral microcup, and the quadrilateral microcups can be arranged in a matrix. Each of the polygonal microcups 421 includes two first sidewalls S41 and two second sidewalls S42, in which the second sidewalls S42 is connected to the first sidewalls S41. Both of the first sidewalls S41 are opposite to and substantially parallel to each other, and both of the second sidewalls S42 are opposite to and substantially parallel to each other, where the included angle θ1 between the axis A1 and the first sidewall S41 can be larger than 60°, and less than or equal to 90°. For example, the included angle θ1 can be equal to 45°.
The widths W41 and W42 of both of the first sidewalls S41 and the second sidewalls S42 are equal to each other, that is, any two of the sidewalls (i.e., first sidewall S41 or second sidewall S42) of each of the polygonal microcups 421 have the equal widths (i.e., widths W41 and W42). Moreover, the first sidewall S41 and the second sidewall S42 connected to each other are perpendicular to each other. Thus, the polygonal microcup 421 can be a square microcup.
Referring to
However, unlike the polygonal microcup 521 in the previous embodiment, each of the polygonal microcups 521 can be a rhombic microcup, not the square microcup. Specifically, each of the polygonal microcups 521 includes two first sidewalls S51 and two second sidewalls S52, in which the second sidewalls S52 are connected to the first sidewalls S51. Both of the first sidewalls S51 are opposite to and substantially parallel to each other, and both of the second sidewalls S52 are opposite to and substantially parallel to each other.
The widths W51 and W52 of both of the first sidewalls S51 and the second sidewalls S52 are equal to each other, and the first sidewall S51 and the second sidewall S52 connected to each other are not perpendicular to each other, so that each of the polygonal microcups 521 can be the rhombic microcup, not the square microcup. Moreover, the included angle θ1 between the axis A1 and the first sidewall S51 can be larger than 60°, and less than or equal to 90°.
Referring to
Consequently, under the condition that the axis is not substantially parallel to any sidewall (e.g., first sidewall S1 or second sidewall S2) of each of the polygonal microcups, the accommodating structure has good or the best shear strength, so that the flexible display panel disclosed by at least one embodiment of the disclosure can be bent (e.g., rolled or folded) around the axis repeatedly many times. Accordingly, the accommodating structure can enhance the tolerant strength of the flexible display panel. In contrast to the existing flexible display panel, the flexible display panel bent around the axis can withstand more times of bending, thereby having a longer lifetime.
In addition, although the accommodating structure may be made of a low-cost material of slightly poor quality, the accommodating structure also can enhance the tolerant strength of the flexible display panel by the above accommodating structure and the axis not parallel to any sidewall of the polygonal microcups, so that the flexible display panel is able to withstand certain times of bending. In other words, in order to maintain or improve the times of bending which the flexible display panel can withstand, the material costs of the accommodating structure can be reduced, thereby enabling the costs of the flexible display panel to decrease.
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims.
Lin, Yi-Sheng, Tsai, Chen-Chu, Yeh, Chia-Chun
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